EP3818034A1 - Treatment of residual streams from the manufacture of bisphenols - Google Patents
Treatment of residual streams from the manufacture of bisphenolsInfo
- Publication number
- EP3818034A1 EP3818034A1 EP18746403.7A EP18746403A EP3818034A1 EP 3818034 A1 EP3818034 A1 EP 3818034A1 EP 18746403 A EP18746403 A EP 18746403A EP 3818034 A1 EP3818034 A1 EP 3818034A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- stream
- bisphenol
- organic sulfides
- residual stream
- catalyst
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C37/00—Preparation of compounds having hydroxy or O-metal groups bound to a carbon atom of a six-membered aromatic ring
- C07C37/68—Purification; separation; Use of additives, e.g. for stabilisation
- C07C37/86—Purification; separation; Use of additives, e.g. for stabilisation by treatment giving rise to a chemical modification
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C37/00—Preparation of compounds having hydroxy or O-metal groups bound to a carbon atom of a six-membered aromatic ring
- C07C37/11—Preparation of compounds having hydroxy or O-metal groups bound to a carbon atom of a six-membered aromatic ring by reactions increasing the number of carbon atoms
- C07C37/20—Preparation of compounds having hydroxy or O-metal groups bound to a carbon atom of a six-membered aromatic ring by reactions increasing the number of carbon atoms using aldehydes or ketones
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C39/00—Compounds having at least one hydroxy or O-metal group bound to a carbon atom of a six-membered aromatic ring
- C07C39/12—Compounds having at least one hydroxy or O-metal group bound to a carbon atom of a six-membered aromatic ring polycyclic with no unsaturation outside the aromatic rings
- C07C39/15—Compounds having at least one hydroxy or O-metal group bound to a carbon atom of a six-membered aromatic ring polycyclic with no unsaturation outside the aromatic rings with all hydroxy groups on non-condensed rings, e.g. phenylphenol
- C07C39/16—Bis-(hydroxyphenyl) alkanes; Tris-(hydroxyphenyl)alkanes
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C37/00—Preparation of compounds having hydroxy or O-metal groups bound to a carbon atom of a six-membered aromatic ring
- C07C37/68—Purification; separation; Use of additives, e.g. for stabilisation
- C07C37/70—Purification; separation; Use of additives, e.g. for stabilisation by physical treatment
- C07C37/84—Purification; separation; Use of additives, e.g. for stabilisation by physical treatment by crystallisation
Definitions
- This invention relates to treatment of residual streams from the manufacture of bisphenols, particularly the manufacture of bisphenol-A, for the purpose of removing and recovering sulfur compounds.
- BPA Bisphenol-A
- r,r-BPA 2,2-bis (4-hydroxyphenyl) propane or para, para-diphenylolpropane
- BPA is a commercially significant compound used to manufacture polycarbonates, other engineering thermoplastics and epoxy resins.
- the polycarbonate application in particular demands high purity BPA due to stringent requirements for optical clarity and color in the finished application.
- BPA is produced commercially by the condensation of acetone and phenol and, in fact, BPA production is the largest consumer of phenol.
- the condensation reaction may take place in the presence of a strong homogenous acid, such as hydrochloric acid, sulfuric acid, or toluene sulfonic acid, or in the presence of a heterogeneous acid catalyst, such as a sulfonated ion exchange resin.
- a strong homogenous acid such as hydrochloric acid, sulfuric acid, or toluene sulfonic acid
- a heterogeneous acid catalyst such as a sulfonated ion exchange resin.
- acidic ion exchange resins have become the overwhelming choice as catalysts for the condensation reaction of bisphenol manufacture, and strongly acidic sulfonated polystyrene ion exchange resins are particularly useful in this regard.
- a cocatalyst is freely circulated in the reactor with the reaction feed. It is used to enhance the selectivity and/or activity of the reaction.
- An alkanethiol such as methyl or ethyl mercaptan, or a mercaptocarboxylic acid, such as 3- mercaptopropionic acid, is typically used as the freely circulating cocatalyst in this technique.
- the catalyst is modified by appending cocatalytic agents, such as thiazolidines and aminothiols, to some of the acid sites on the catalyst.
- cocatalytic agents such as thiazolidines and aminothiols
- mercapto-promoter groups may be attached to backbone sulfonate ions of a cation exchange resin by covalent or ionic nitrogen linkages.
- sulfur-containing promoters particularly methyl mercaptans, also react with carbonyls and other unsaturated intermediates to form sulfides.
- the present invention relates to a method for treating a residual stream from bisphenol manufacture, wherein the residual stream comprises unreacted phenols, bisphenol isomers, trisphenols, organic sulfides and water and wherein the method comprises:
- the present invention relates to a method for producing bisphenol- A comprising:
- step (e2) supplying the recycle stream to step (a2) or step (b2);
- step (g2) supplying the distillate products recovered in step (f2) to step (a2).
- the present invention relates to a method for producing bisphenol-A comprising:
- step (e3) recycling at least part of the second effluent stream to step (a3) or step (b3);
- step (h3) supplying the distillate products recovered in step (g3) to step (a3).
- Figure 1 illustrates a typical process for treating a residual stream from a bisphenol-A manufacturing process.
- Figure 2 illustrates a first embodiment of the process disclosed herein.
- Figure 3 illustrates a second embodiment of the process disclosed herein.
- Figure 4 illustrates a modification of the second embodiment of the process disclosed herein.
- Figure 5 shows the correlation in the first-order reaction rate constant for the decrease in 4-methyl-4-methylthio-2-pentanone (MOM) concentration as a function of the water concentration in the reaction feed for a batch reaction of about 750 ppmwt MOM in phenol in the presence of a sulfonated strong acid ion exchange resin.
- MOM 4-methyl-4-methylthio-2-pentanone
- the present invention relates to the production of bisphenols by the acid catalyzed condensation of carbonyl compounds with phenols in the presence of sulfur-containing promoters.
- the present invention provides a simple process for treating the residual streams remaining after recovery of the desired bisphenol product so as to convert sulfide by-products of the condensation reaction to thiols which can then be recycled back to the condensation reaction.
- the present process is applicable to the acid-catalyzed condensation reaction between any carbonyl compound reactant and any phenolic compound reactant to produce a bisphenol product.
- suitable carbonyl compounds are those compounds represented by the following formula:
- R represents hydrogen or an aliphatic, cycloaliphatic, aromatic, or heterocyclic radical, including hydrocarbon radicals such as alkyl, cycloalkyl, aryl, aralkyl, alkaryl, whether saturated or unsaturated; n is greater than 0, preferably from 1 to 3, more preferably from 1-2, and most preferably is 1; and when n is greater than 1, X represents a bond, or a multivalent linking group having from 1 to 14 carbon atoms, preferably from 1 to 6 carbon atoms, more preferably from 1 to 4 carbon atoms; and when n is 1, X represents hydrogen or an aliphatic, cycloaliphatic, aromatic, or heterocyclic radical, including hydrocarbon radicals such as alkyl, cycloalkyl, aryl, aralkyl, alkaryl, whether saturated or unsaturated, provided that X and R are not both hydrogen.
- Suitable carbonyl compounds for use herein include aldehydes and ketones. These compounds generally contain from three to fourteen carbon atoms, and are preferably aliphatic ketones. Examples of suitable carbonyl compounds include ketones such as acetone, methyl ethyl ketone, diethyl ketone, dibutyl ketone, isobutyl methyl ketone, acetophenone, methyl and amyl ketone, cyclohexanone, 3,3,5-trimethylcyclohexanone, cyclopentanone, l,3-dichloroacetone and the like. The most preferred is acetone.
- Phenolic compounds suitable for use herein include phenol and the homologues and substitution products of phenol containing at least one replaceable hydrogen atom directly bonded to the aromatic phenol nucleus.
- groups substituting for the hydrogen atom and directly bonded to the aromatic nucleus include the halogen radicals such as chloride and bromide, and the hydrocarbon radicals such as alkyl, cycloalkyl, aryl, alkaryl and aralkyl groups.
- Suitable phenolic compounds include phenol, the cresols, the xylenols, carvacrol, cumenol, 2-methyl-6-ethyl phenol, 2,4-dimethyl-3- ethylphenol, o-chlorophenol, m-chlorophenol, o-t-butylphenol, 2,5-xylenol, 2,5-di-t-butylphenol, o-phenylphenol, 4-ethylphenol, 2-ethyl-4-methylphenol, 2,3,6-trimethylphenol, 2-methyl-4- tertbutylphenol, 2-tertbutyl-4methylphenol, 2,3,5,6-tetramethylphenols, 2,6-dimethylphenol, 2,6- ditertbutylphenol, 3,5-dimethylphenol, 2-methyl-3,5-diethylphenol, o-phenylphenol, p- phenylphenol, naphthols, phenanthrol, and the like. Most preferred are compositions comprising
- the bisphenol compounds obtained by the condensation reaction of a phenolic compound and a carbonyl compound in the present process are compounds wherein the nuclei of at least two phenolic radicals are directly attached by carbon to carbon linkages to the same carbon atom in an alkyl group.
- An illustrative non-limiting example of a bisphenol compound is represented by the formula:
- Ri and R 2 each independently represent a monovalent organic radical.
- radicals include hydrocarbon radicals such as aliphatic, cycloaliphatic, aromatic, or heterocyclic radical, more specifically hydrocarbon radicals such as alkyl, cycloalkyl, aryl, aralkyl, alkaryl, whether saturated or unsaturated.
- Ri and R 2 each independently represent an alkyl radical having from 1 to 2 carbon atoms.
- the bisphenol compound comprises 2,2- bis (4-hydroxyphenyl) propane, i.e. bisphenol-A (BPA).
- reaction conditions used to effect the condensation reaction described above will vary depending on the type of phenolic compound, solvent, carbonyl compound, and condensation catalyst selected. Generally, the phenolic compounds and the carbonyl compounds are reacted in a reaction vessel, whether in the batch or continuous mode, at a temperature ranging from about 20°C to about l30°C, preferably from about 50°C to about 90°C.
- the pressure conditions are not particularly limited and the reaction may proceed at atmospheric, sub atmospheric or super atmospheric pressure. However, it is preferred to run the reaction either without any externally induced pressure, or at sufficient pressure to force the reaction mixture across a catalyst bed or to force the reaction mixture upstream in a vertical reactor, or to maintain the contents of the reaction vessel in a liquid state if the reaction is run at a temperature above the boiling point of any ingredient.
- the pressure and temperature should be set under conditions to retain the reactants in the liquid phase in the reaction zone. The temperature may exceed l30°C, but should not be so high as to degrade any of the ingredients in the reaction vessel, nor should it be so high as to degrade the reaction product or promote the synthesis of a substantial amount of unwanted by-products.
- the reactants are introduced into the reaction zone under conditions to assure a molar excess of the phenolic compound over the carbonyl compound.
- the molar ratio of the phenolic compound to the carbonyl compound is preferably at least about 2: 1, more preferably at least about 4: 1, and up to about 25: 1.
- the condensation reaction is conducted in the presence of an acidic heterogeneous catalyst promoted by at least one organic sulfur-containing compound.
- Suitable catalysts include molecular sieves, salts of heteropolyacids partially neutralized and insolubilized, and acidic cation exchange resins.
- Preferred condensation catalysts are cation exchange resins and especially those having a cation exchange capacity of at least about 0.5 and, more preferably, greater than about 4.0 meq/g dry weight.
- sulfonated cation exchange resins such as sulfonated styrene-divinylbenzene copolymers, sulfonated cross-linked styrene polymers, phenol- formaldehyde- sulfonic acid resins, benzene-formaldehyde- sulfonic acid resins, perfluorinated sulfonic acid resins and the like.
- Suitable cation exchange resins are made from sulfonated polymerized styrene monomer which has been cross linked with from about 1% to about 8% divinylbenzene (resin).
- Suitable sulfonated resins are Amberlyst® 131, Lewatit® K-1221, Purolite® CT-122, Purolite® CT-124, DiaionTM SK104H, Tulsion® 38, and Dowex® 50WX4.
- the condensation catalyst system also includes at least one organic sulfur-containing promoter, which generally contains at least one thiol, S-H, group.
- thiol promoters can be either ionically or covalently bonded to the heterogeneous acid catalyst or unbound to the heterogeneous acid catalyst and added separately to the condensation reaction.
- bound promoters include mercaptoalkylpyridines, mercaptoalkylamines, thiazolidines and aminothiols.
- Non-limiting examples of unbound promoters include alkyl mercaptans, such as methyl mercaptan (MeSH) and ethyl mercaptan, mercaptocarboxylic acids, such as mercaptopropionic acid, and mercaptosulfonic acids.
- alkyl mercaptans such as methyl mercaptan (MeSH) and ethyl mercaptan
- mercaptocarboxylic acids such as mercaptopropionic acid
- mercaptosulfonic acids such as mercaptosulfonic acids.
- the amount of organic sulfur-containing promoter employed in the catalyst system depends on the particular acidic heterogeneous catalyst employed and the condensation process to be catalyzed. In general, however, the organic sulfur-containing promoter is employed in an amount from 2 to 30 mol %, such as 5 to 20 mol %, based on the acid group (sulfonic group) in the acid ion exchanger.
- BMTP 2,2-bis(methylthio) propane
- a convenient hydrolyzing agent is water, which may be introduced into any of the feed charges, directly into the reaction zone, or may be produced in situ by the condensation reaction between the carbonyl compound and the phenolic compound.
- a molar ratio of water to BMTP catalyst promoter ranging from about 1: 1 to about 5: 1 is sufficient to adequately hydrolyze the BMTP catalyst promoter. This quantity of water is produced in situ under typical reaction conditions. Thus, additional water does not need to be introduced into the reaction zone, although water may optionally be added if desired.
- any suitable reactor may be used as the reaction zone.
- the reaction can occur in a single reactor, or in a plurality of reactors connected in series or in parallel.
- the reactor can be a back mixed or plug flow reactor, and the reaction can be conducted in a continuous or batch mode, and the reactor can be oriented to produce an up-flow or down-flow stream.
- the liquid space velocity of the mixture of the raw materials supplied to the reactor is usually 0.2 to 50 hr 1 .
- the amount of the strongly acid ion exchange resin used although variable depending on the reaction temperature and pressure, is usually 20 to 100% by weight based on the mixture of the raw materials.
- the reaction time is usually 0.5 to 5 hours.
- the main products of the condensation reaction are the desired bisphenol isomer, normally bisphenol-A, and water together with various by-products, including other bisphenol isomers, such as 2-(4-hydroxyphenyl)-2-(2-hydroxyphenyl)propane or o,r-BPA, trisphenols and other impurities, such as chromans and indanes, as well as unconverted phenol and in some cases unconverted carbonyl compound.
- the condensation reaction effluent also contains organic sulfides formed from the condensation of the thiol promoter with carbonyl, carbonyl derivatives, and unsaturated intermediates.
- BMTP 2,2-bis(methylthio)propane
- MOM 4-methyl-4-methylthio-2-pentanone
- any method known to those of skill in the art may be employed to recover the desired bisphenol product, typically bisphenol-A, from the condensation effluent.
- the crude effluent from the condensation reaction is fed to a first separator, such as a distillation column, where most of the water and any unreacted carbonyl compound can be removed as overhead while the desired bisphenol product, other bisphenol isomers, unreacted phenolic compound, and the heavy by-products (including organic sulfides) are recovered as a bottoms product.
- This bottoms product may be fed to a further separator. While crystallization is a common method of bisphenol- A separation, any known method of separating the desired bisphenol product from the bottoms product can be used depending upon the desired degree of purity of the bisphenol product.
- the liquid phase mixture remaining after separation of the desired bisphenol product from the condensation effluent, whether by crystallization or any other method, is referred to herein as the“residual stream”. Where the separation is by crystallization, the residual stream is conventionally referred to as the mother liquor.
- the composition of the residual stream can vary widely but, typically after distillation to remove and recycle added solvent and optionally to effect partial dewatering, the residual stream contains:
- the residual stream undergoes various treatments to recover and recycle the unreacted phenolic compound and the bisphenol isomers.
- part of the residual stream is generally purged to avoid build-up of heavy aromatic compounds in the recycle loops of the process.
- the present invention provides a process for converting at least part of the organic sulfides present in the residual stream to thiols before any of the residual stream is purged so that the loss of thiol promoter through purging is minimized and disposal problems for the purge stream are reduced.
- the presently disclosed process includes contacting at least a portion of the residual stream or a reaction product thereof with an acidic hydrolysis catalyst under conditions sufficient to allow acid-catalyzed hydrolysis of organic sulfides in the residual stream to the corresponding thiol and a carbonyl compound.
- the liberated carbonyl can then react with phenol in the residual stream to form a bisphenol isomer and water. Consumption of the carbonyl and production of water favors further conversion of the sulfides to thiols and carbonyls.
- a representative example of the hydrolysis reaction is the hydrolysis of 4-methyl-4-methylthio-2- pentanone which, as discussed above, can be produced in the methyl mercaptan-promoted manufacture of bisphenol-A and which can be hydrolyzed in the presence of an acid catalyst according to the following reaction:
- any known hydrolysis catalyst can be used to convert the organic sulfides in the residual stream to the corresponding thiols, although preferred catalysts include acidic ion exchange resins, especially sulfonated acidic ion exchange resins.
- the hydrolysis catalyst comprises an acidic, sulfonated microreticular polystyrene ion exchange resin with 2% - 6% divinylbenzene crosslinking.
- Suitable conditions for the hydrolysis reaction include a temperature from 60 to 1 l0°C, such as 75 to 95°C, and a weight hourly space velocity WHSV of 1-10 hr 1 .
- the molar ratio of water to hydrolyzable organic sulfide in the feed stream to the hydrolysis reaction is not critical but typically is at least 2: 1, such as at least 4: 1 or greater, for example at least 20: 1. Upper limits on the molar ratio of water to hydrolyzable organic sulfide are largely driven by practical concerns and can be up to 100: 1 or more, such as up to 80: 1. Any known reactor configuration can be used for the hydrolysis reaction but in one preferred embodiment the reactor operates liquid full, with downflow of the feed through the ion exchange resin catalyst bed.
- the effluent from the hydrolysis reaction is fed to a distillation column where the thiols, being more volatile than the corresponding sulfides, are recovered in the overhead stream with water and the unreacted phenolic compound.
- the bottoms product comprises bisphenol isomers, trisphenols and heavier aromatic products and has a lower content of organic sulfides than the residual stream.
- the bottoms product contains less than 100 ppm by weight, such as less than 10 ppm by weight, of organic sulfides.
- All or at least a part of the overhead products can then be recycled, generally without further separation, to the bisphenol manufacturing process, particularly the condensation reactor, while at least part of the bottoms product can be used in a downstream process, undergo further treatment to recover more phenol, acetone and/or isopropenyl phenol, and/or be purged for disposal.
- suitable operating conditions for the distillation column include a temperature of l60°C to 220°C and a pressure of 75 mmHga to 200 mmHga.
- the residual stream is divided into first and second portions without any initial treatment of the residual stream (except for solvent removal and partial dewatering).
- the first portion of the residual stream is then supplied to an isomerization reaction zone, as described below, while the second portion is supplied to the hydrolysis reactor described above.
- the relative amounts of the first and second portions of the residual stream are not critical but in some embodiments the second portion comprises at least 1 wt%, such as at least 3 wt%, of the total residual stream, but generally not more than 6 wt%, such as not more than 5 wt% of the total residual stream.
- the isomerization reaction zone employed in said one implementation of the present process can include any known acid catalyst effective under the conditions in the isomerization reaction zone to isomerize a non-equilibrium mixture of bisphenol isomers, especially a mixture depleted in the desired bisphenol isomer.
- a suitable isomerization catalyst comprises an acidic ion exchange resin, especially a sulfonated acidic ion exchange resin.
- Suitable isomerization conditions include a temperature from 60 to l00°C, such as 75 to 85°C, and a weight hourly space velocity WHSV of 1-10 hr 1 .
- the effluent from the isomerization reaction zone has a higher content of the desired bisphenol isomer, such as r,r-BPA, than the residual stream and can be recycled to the bisphenol manufacturing process, such as to the condensation reactor or the crystallizer, for selective recovery of the desired bisphenol isomer.
- the desired bisphenol isomer such as r,r-BPA
- the entire residual stream is supplied to a combined isomerization/hydrolysis reaction zone containing one or more catalysts effective under the conditions in the reaction zone to isomerize a non-equilibrium mixture of bisphenol isomers, especially a mixture depleted in the desired bisphenol isomer, and to hydrolyze organic sulfides to the corresponding thiols.
- Suitable catalysts for effecting the combined isomerization/hydrolysis reaction comprise acidic ion exchange resins, especially sulfonated acidic ion exchange resins.
- Suitable isomerization/hydrolysis conditions include a temperature from 60 to 1 l0°C, such as 80 to 90°C, and a weight hourly space velocity WHSV of 1-10 hr 1 .
- the effluent from the isomerization/hydrolysis reaction zone has a higher content of the desired bisphenol isomer, such as r,r-BPA, than the residual stream and a lower content of organic sulfides than the residual stream.
- the effluent is then divided into a first and second portions, with the first portion being recycled to the bisphenol manufacturing process, particularly the crystallizer for selective recovery of the desired bisphenol isomer, and the second portion being supplied to a distillation column.
- the relative amounts of the first and second portions of the isomerization/hydrolysis effluent are not critical but in some embodiments the second portion comprises at least 1 wt%, such as at least 3 wt%, of the total effluent, but generally not more than 6 wt%, such as not more than 5 wt% of the total effluent.
- the distillation column which receives the second portion of the isomerization/hydrolysis effluent is operated under conditions such that the unreacted phenolic compound, water and thiols are recovered in the overhead stream, while the bottoms product comprises bisphenol isomers, trisphenols and heavier aromatic products and has a lower content of organic sulfides than the residual stream. All or at least a part of the overhead products can then be recycled, generally without further separation, to the bisphenol manufacturing process, particularly the condensation reactor, while at least part of the bottoms product can be used in a downstream process, undergo further treatment to recover more phenol, acetone and/or isopropenyl phenol, and/or be purged for disposal.
- suitable operating conditions for the distillation column include a temperature of l60°C to 220°C and a pressure of 75 mmHga to 200 mmHga.
- the second portion of the isomerization/hydrolysis effluent is fed to a further hydrolysis reactor before being supplied to the distillation column.
- the further hydrolysis reactor converts additional organic sulfides present in the isomerization/hydrolysis effluent back into thiols for recovery in the overhead of the distillation column.
- a crude product stream from a thiol-promoted bisphenol-A manufacturing process that contains phenol, bisphenol-A and isomers thereof, trisphenols and other impurities, such as chromans and indanes, water, and sulfides formed from condensation of the thiol promoter with acetone, is purified, typically in a crystallizer (not shown), to recover the desired bisphenol-A.
- the second portion (13) of the residual stream (11) is fed to a distillation column (20), which separates the second portion (13) into a distillate stream (21) containing phenol and water and a bottoms product (22) containing BPA isomers, trisphenols and other impurities, typically including from about 0.01 to about 0.60 wt% of organic sulfides.
- FIG. 2 Various embodiments of the invention are shown in Figures 2 to 4, in which like reference numerals are used to identify like components to those shown in Figure 1.
- the residual stream (11) is again split into a first portion (12) and a second portion (13), with the first portion (12) being supplied to an isomerization reactor (14) for contact with an acid isomerization catalyst.
- the second portion (13) of the residual stream is supplied to a hydrolysis reaction zone (25) where organic sulfides are converted back to carbonyl compounds and thiols.
- the effluent (26) from the hydrolysis reaction zone (25) is then supplied to the distillation column (20) for separation into a distillate stream (21) which now contains thiols in addition to phenol and water and a bottoms product (22) which contains BPA isomers, trisphenols and other impurities, but less organic sulfides than the residual stream (11).
- FIG. 3 A second embodiment of the disclosed process is illustrated in Figure 3, in which the entire residual stream (11) is supplied to an isomerization/hydrolysis reactor (30) where it is contacted with one or more acid isomerization and hydrolysis catalysts to convert the bisphenol- A-depleted mixture of bisphenol isomers in the residual stream (11) back towards equilibrium concentration and to hydrolyze at least part of the organic sulfides to the corresponding thiols.
- the effluent (31) from the isomerization/hydrolysis reactor (30) is then divided into a first portion (32), which is recycled back to the bisphenol- A manufacturing process and a second portion (33), which is supplied to the distillation column (20).
- the reactor (34) contains an acid catalyst, such as an ion exchange resin, effective to convert at least part of any remaining organic sulfides to the associated thiol.
- an acid catalyst such as an ion exchange resin
- a batch reactor system comprising a 500-ml three-necked, jacketed, round bottom flask, a two-stage condenser to minimize the loss of volatile components, and an ethylene glycol circulating bath for temperature control of the reaction mixture.
- a thermocouple inserted into the reactor monitors the reaction temperature throughout the experiments.
- a magnetic stirring bar provides constant mixing of the reactor.
- the reactor was initially loaded with 170 grams of phenol and 30 grams of p,p- BPA isomer.
- the IER was subsequently air dried overnight in the vent hood.
- the IER is dried further using 1000 ml of phenol over a period of 2.5 hours in a Soxhlet extractor, prior to being charged to the reactor.
- the mixture of phenol/p, p-BPA/IER (initially at room temperature) is heated to 80°C by circulating glycol through the reactor jacket.
- Example 1 For these examples the batch reaction described in Example 1 was repeated using the same conditions except that the measured water concentration of sample taken immediately before MOM addition (sample 0) was varied as shown in Table 1.
- Example 1 For these examples the batch reaction described in Example 1 was repeated using the same conditions except that the reaction temperatures were increased to 95 °C for Example 7 and Example 8, and were decreased to 65°C for Example 9 and Example 10.
- Example 11 the batch reaction described in Example 1 was repeated using a volume of 4% crosslinked S-DVB ion exchange resin equivalent to 10 grams on a dry basis instead of 5 grams.
- Example 12 For Examples 12 through 15 the batch reaction described in Example 1 was repeated using a volume of 2% crosslinked S-DVB ion exchange resin (Purolite® CT-122) equivalent to 5 dry grams instead of 4% cross-linked S-DVB ion exchange resin.
- 2% crosslinked S-DVB ion exchange resin Purolite® CT-122
- Example 16 the batch reaction described in Example 1 was repeated using 1.345 grams of MOM to obtain an initial concentration of approximately 6,300 ppmwt with a water concentration of 0.29% wt.
- the measured MOM concentrations from Examples 1 to 6 can be plotted versus reaction time to show that the hydrolysis reaction rate is essentially first-order with respect to MOM.
- An experimental reaction rate constant, k exp can then be calculated as shown in the last column of Table 1.
- the experimental reaction rate constants for Examples 1-6 are plotted as a function of the initial water concentration in Figure 5 which shows the MOM reaction rate constant is inversely proportional to the square of the initial water concentration.
- Figure 5 suggests that the effective acidity of the ion exchange resin has a strong influence on MOM reaction rate and that the hydrolysis reaction rate is not limited by the water concentration as long as it is present in stoichiometric excess.
- the correlation between the initial water concentration and the experimental reaction rate constants for Examples 1-6 was used to calculate an adjusted experimental reaction rate constant, ko.5w%, at a nominal initial water concentration of 0.5%wt.
- the expected value of ko.5w% based on Examples 1-6 is 0.0125.
- the adjusted experimental rate constants for Examples 1-16 are shown in Table 2.
- the value in the rightmost column is R, the ratio of the adjusted experimental rate constant, ko . 5 w% , to the expected value of 0.0125 derived from the correlation in Figure 5.
- Examples with R values greater than 1 had a higher reaction rate than the water adjusted rate correlation for the temperature, catalyst type, and catalyst loading rate used in Examples 1 - 6.
- Examples with R values less than 1 had a lower reaction rate than the water adjusted rate correlation for the temperature, catalyst type, and catalyst loading rate used in Examples 1 - 6.
- Example 16 demonstrates effective hydrolysis of MOM for concentrations up to 6,300 ppmwt at a 3.72:1 molar ratio of water to hydrolyzable organic sulfides.
- Table 3 shows the MOM concentration as a function of time for Example 16. The concentration of methyl mercaptan (MeSH) increased to stoichiometrically equivalent concentration.
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Abstract
Description
Claims
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US2018/041024 WO2020009705A1 (en) | 2018-07-06 | 2018-07-06 | Treatment of residual streams from the manufacture of bisphenols |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3818034A1 true EP3818034A1 (en) | 2021-05-12 |
| EP3818034B1 EP3818034B1 (en) | 2026-02-18 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP18746403.7A Active EP3818034B1 (en) | 2018-07-06 | 2018-07-06 | Treatment of residual streams from the manufacture of bisphenols |
Country Status (9)
| Country | Link |
|---|---|
| US (1) | US11760710B2 (en) |
| EP (1) | EP3818034B1 (en) |
| JP (1) | JP7155419B2 (en) |
| KR (1) | KR102604125B1 (en) |
| CN (2) | CN120664949A (en) |
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| WO (1) | WO2020009705A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
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| WO2020009705A1 (en) | 2018-07-06 | 2020-01-09 | Badger Licensing Llc | Treatment of residual streams from the manufacture of bisphenols |
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| CN118324607B (en) * | 2024-04-11 | 2024-10-01 | 天津大学 | A process for reducing by-products in a bisphenol A reaction system |
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| US4107218A (en) * | 1976-06-16 | 1978-08-15 | Union Carbide Corporation | Decoloration of bisphenol-A recycle stream with cation exchange resin |
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| JP2885606B2 (en) * | 1993-05-12 | 1999-04-26 | 出光石油化学株式会社 | Method for producing 2,2-bis (4-hydroxyphenyl) propane |
| US5336812A (en) * | 1993-11-12 | 1994-08-09 | Aristech Chemical Corporation | Method of making 1,1-bis-(4-hydroxyphenyl)-3,3,5-trimethylcyclohexane |
| CN1205683A (en) * | 1995-12-19 | 1999-01-20 | 国际壳牌研究有限公司 | Improved method for producing bisphenol |
| US5783733A (en) * | 1996-06-13 | 1998-07-21 | General Electric Company | Process for manufacture of bisphenol |
| DE19720540A1 (en) * | 1997-05-16 | 1998-11-19 | Bayer Ag | Process for processing mother liquors from bisphenol synthesis |
| JP4093655B2 (en) | 1998-10-22 | 2008-06-04 | 出光興産株式会社 | Production method of bisphenol A |
| US6133486A (en) * | 1998-12-30 | 2000-10-17 | General Electric Company | Phenol recovery from BPA process waste streams |
| JP2000229899A (en) * | 1999-02-09 | 2000-08-22 | Idemitsu Petrochem Co Ltd | Production of bisphenol a |
| JP2002316962A (en) * | 2001-04-17 | 2002-10-31 | Idemitsu Petrochem Co Ltd | Method for producing bisphenol a |
| JP4152655B2 (en) | 2002-03-29 | 2008-09-17 | 出光興産株式会社 | Method for producing bisphenol A |
| DE102004005723A1 (en) | 2004-02-05 | 2005-08-25 | Bayer Materialscience Ag | Preparation of bisphenol A with reduced sulfur content |
| ATE519726T1 (en) * | 2006-05-04 | 2011-08-15 | Badger Licensing Llc | IMPROVED PROCESS FOR PRODUCING POLYPHENOLS |
| JP5030472B2 (en) | 2006-05-17 | 2012-09-19 | 出光興産株式会社 | Manufacturing method and manufacturing equipment of high purity bisphenol A |
| JP2009242316A (en) | 2008-03-31 | 2009-10-22 | Mitsubishi Chemicals Corp | Method for producing bisphenol a |
| US7858830B2 (en) * | 2008-10-28 | 2010-12-28 | Badger Licensing Llc | Process for recovering phenol from a BPA waste stream |
| EP2390243B1 (en) | 2009-01-22 | 2020-07-08 | Mitsubishi Chemical Corporation | Process for preparing bisphenol |
| JP5668562B2 (en) | 2011-03-24 | 2015-02-12 | 三菱化学株式会社 | Method for producing bisphenol A |
| US8431749B2 (en) | 2011-06-06 | 2013-04-30 | Badger Licensing Llc | Recovery of phenol and acetone from bisphenol-A streams |
| TWI557103B (en) | 2011-06-06 | 2016-11-11 | 貝吉特許有限責任公司 | Treatment of bisphenol-a residue streams |
| US8962117B2 (en) | 2011-10-27 | 2015-02-24 | Sabic Global Technologies B.V. | Process for producing bisphenol A with reduced sulfur content, polycarbonate made from the bisphenol A, and containers formed from the polycarbonate |
| CN104144902A (en) | 2012-02-29 | 2014-11-12 | 沙特基础创新塑料Ip私人有限责任公司 | Polycarbonate made from low sulfur bisphenol a and containing converions material chemistry, and articles made therefrom |
| US9732022B2 (en) | 2012-10-29 | 2017-08-15 | Sabic Global Technologies B.V. | Recovery of materials from a mother liquor residue |
| US11760710B2 (en) | 2018-07-06 | 2023-09-19 | Badger Licensing Llc | Treatment of residual streams from the manufacture of bisphenols |
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- 2018-07-06 CN CN202510724931.4A patent/CN120664949A/en active Pending
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2020009705A1 (en) | 2018-07-06 | 2020-01-09 | Badger Licensing Llc | Treatment of residual streams from the manufacture of bisphenols |
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| SA521420972B1 (en) | 2025-05-07 |
| CN120664949A (en) | 2025-09-19 |
| TW202017891A (en) | 2020-05-16 |
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| JP7155419B2 (en) | 2022-10-18 |
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| JP2021535926A (en) | 2021-12-23 |
| WO2020009705A1 (en) | 2020-01-09 |
| EP3818034B1 (en) | 2026-02-18 |
| US20210363082A1 (en) | 2021-11-25 |
| CN112739676A (en) | 2021-04-30 |
| SG11202012771UA (en) | 2021-02-25 |
| TWI838386B (en) | 2024-04-11 |
| KR102604125B1 (en) | 2023-11-17 |
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